Alkalinity cycling and carbonate chemistry decoupling in seagrass mystify processes of acidification mitigation

海草中碱度循环和碳酸盐化学的脱钩使酸化缓解过程变得扑朔迷离。

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Abstract

The adverse conditions of acidification on sensitive marine organisms have led to the investigation of bioremediation methods as a way to abate local acidification. This phytoremediation, by macrophytes, is expected to reduce the severity of acidification in nearshore habitats on short timescales. Characterizing the efficacy of phytoremediation can be challenging as residence time, tidal mixing, freshwater input, and a limited capacity to fully constrain the carbonate system can lead to erroneous conclusions. Here, we present in situ observations of carbonate chemistry relationships to seagrass habitats by comparing dense (DG), patchy (PG), and no grass (NG) Zostera marina pools in the high intertidal experiencing intermittent flooding. High-frequency measurements of pH, alkalinity (TA), and total-CO(2) elucidate extreme diel cyclicity in all parameters. The DG pool displayed frequent decoupling between pH and aragonite saturation state (Ω(arg)) suggesting pH-based inferences of acidification remediation by seagrass can be misinterpreted as pH and Ω(arg) can be independent stressors for some bivalves. Estimates show the DG pool had an integrated ΔTA of 550 μmol kg(-1) over a 12 h period, which is ~ 60% > the PG and NG pools. We conclude habitats with mixed photosynthesizers (i.e., PG pool) result in less decoupling between pH and Ω(arg).

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